globalchange  > 影响、适应和脆弱性
DOI: 10.5194/tc-9-1857-2015
Scopus记录号: 2-s2.0-84942418818
论文题名:
A macroscale mixture theory analysis of deposition and sublimation rates during heat and mass transfer in dry snow
作者: Hansen A; C; , Foslien W; E
刊名: Cryosphere
ISSN: 19940416
出版年: 2015
卷: 9, 期:5
起始页码: 1857
结束页码: 1878
语种: 英语
英文关键词: alpine environment ; condensation ; dry density ; dry matter ; finite element method ; heat transfer ; mass transfer ; metamorphism ; microstructure ; seasonal variation ; snow accumulation ; snow cover ; snowpack ; sublimation ; temperature gradient ; thermal conductivity
英文摘要: The microstructure of a dry alpine snowpack is a dynamic environment where microstructural evolution is driven by seasonal density profiles and weather conditions. Notably, temperature gradients on the order of 10-20 K m-1, or larger, are known to produce a faceted snow microstructure exhibiting little strength. However, while strong temperature gradients are widely accepted as the primary driver for kinetic growth, they do not fully account for the range of experimental observations. An additional factor influencing snow metamorphism is believed to be the rate of mass transfer at the macroscale. We develop a mixture theory capable of predicting macroscale deposition and/or sublimation in a snow cover under temperature gradient conditions. Temperature gradients and mass exchange are tracked over periods ranging from 1 to 10 days. Interesting heat and mass transfer behavior is observed near the ground, near the surface, as well as immediately above and below dense ice crusts. Information about deposition (condensation) and sublimation rates may help explain snow metamorphism phenomena that cannot be accounted for by temperature gradients alone. The macroscale heat and mass transfer analysis requires accurate representations of the effective thermal conductivity and the effective mass diffusion coefficient for snow. We develop analytical models for these parameters based on first principles at the microscale. The expressions derived contain no empirical adjustments, and further, provide self consistent values for effective thermal conductivity and the effective diffusion coefficient for the limiting cases of air and solid ice. The predicted values for these macroscale material parameters are also in excellent agreement with numerical results based on microscale finite element analyses of representative volume elements generated from X-ray tomography.
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/75243
Appears in Collections:影响、适应和脆弱性
气候变化与战略

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作者单位: Department of Mechanical Engineering, University of Wyoming, Laramie, WY, United States

Recommended Citation:
Hansen A,C,, Foslien W,et al. A macroscale mixture theory analysis of deposition and sublimation rates during heat and mass transfer in dry snow[J]. Cryosphere,2015-01-01,9(5)
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